Flexible and Efficient Semi-Empirical DFTB Parameters for Electronic Structure Prediction of 3D, 2D Iodide Perovskites and Heterostructures
Density Functional Tight-Binding (DFTB), an approximative approach derived from Density Functional Theory (DFT), has the potential to pave the way for simulations of large periodic or non-periodic systems. We have specifically tailored DFTB parameters to enhance the accuracy of electronic band gap c...
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Zusammenfassung: | Density Functional Tight-Binding (DFTB), an approximative approach derived
from Density Functional Theory (DFT), has the potential to pave the way for
simulations of large periodic or non-periodic systems. We have specifically
tailored DFTB parameters to enhance the accuracy of electronic band gap
calculations in both 3D and 2D lead-iodide perovskites, at a significantly
reduced computational cost relative to state-of-the-art ab initio calculations.
Our electronic DFTB parameters allow computing not only the band gap but also
effective masses of perovskite materials with reasonable accuracy compared to
existing experimental data and state-of-the-art DFT calculations. The
electronic band structures of vacancy-ordered and, lead- and iodide- deficient
perovskites are also explored. Additionally, we demonstrate the efficiency of
DFTB in computing electronic band alignments in perovskite heterostructures.
The DFTB-based approach is anticipated to be beneficial for studying
large-scale systems such as heterostructures and nanocrystals. |
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DOI: | 10.48550/arxiv.2412.07016 |